BACKGROUND OF THE INVENTION
Field of the Invention
[0001] This invention relates to poly(oxyalkylene) esters of substituted polyphenylethers
and to fuel compositions containing poly(oxyalkylene) esters of substituted polyphenylethers
to prevent and control engine deposits.
Description of the Related Art
[0002] It is well known that automobile engines tend to form deposits on the surface of
engine components, such as carburetor ports, throttle bodies, fuel injectors, intake
ports and intake valves, due to the oxidation and polymerization of hydrocarbon fuel.
These deposits, even when present in relatively minor amounts, often cause noticeable
driveability problems, such as stalling and poor acceleration. Moreover, engine deposits
can significantly increase an automobile's fuel consumption and production of exhaust
pollutants. Therefore, the development of effective fuel detergents or "deposit control"
additives to prevent or control such deposits is of considerable importance and numerous
such materials are known in the art.
[0003] For example, polyether amine fuel additives are well known in the art for the prevention
and control of engine deposits. These polyether additives have a polyoxyalkylene "backbone",
i.e., the polyether portion of the molecule consists of repeating oxyalkylene units.
U.S. Patent No. 4,191,537, issued March 4, 1980 to Lewis et al., for example, discloses
a fuel composition comprising a major portion of hydrocarbons boiling in the gasoline
range and from 30 to 2,000 ppm of a hydrocarbyl polyoxyalkylene aminocarbamate having
a molecular weight from about 600 to 10,000, and at least one basic nitrogen atom.
The hydrocarbyl polyoxyalkylene moiety is composed of oxyalkylene units having from
2 to 5 carbon atoms in each oxyalkylene unit. These fuel compositions are taught to
maintain the cleanliness of intake systems without contributing to combustion chamber
deposits.
[0004] Aromatic compounds containing a poly(oxyalkylene) moiety are also known in the art.
For example, the above-mentioned U.S. Patent No. 4,191,537, discloses alkylphenyl
poly(oxyalkylene) polymers which are useful as intermediates in the preparation of
alkylphenyl poly(oxyalkylene) aminocarbamates.
[0005] Similarly, U.S. Patent No. 4,881,945, issued November 21, 1989 to Buckley, discloses
a fuel composition comprising a hydrocarbon boiling in the gasoline or diesel range
and from about 30 to about 5,000 parts per million of a fuel soluble alkylphenyl polyoxyalkylene
aminocarbamate having at least one basic nitrogen and an average molecular weight
of about 800 to 6,000 and wherein the alkyl group contains at least 40 carbon atoms.
[0006] U.S. Patent No. 5,090,914, issued February 25, 1992 to Reardan et al., discloses
poly(oxyalkylene) aromatic compounds having an amino or hydrazinocarbonyl substituent
on the aromatic moiety and an ester, amide, carbamate, urea or ether linking group
between the aromatic moiety and the poly(oxyalkylene) moiety. These compounds are
taught to be useful for modifying macromolecular species such as proteins and enzymes.
U.S. Patent Nos. 5,081,295; 5,103,039; and 5,157,099; all issued to Reardan et al.,
disclose similar poly(oxyalkylene) aromatic compounds.
[0007] Certain poly(oxyalkylene) esters have been shown to reduce engine deposits when used
in fuel compositions. U.S. Patent. No. 5,211,721, issued May 18, 1993 to Sung et al.,
for example, discloses an oil soluble polyether additive comprising the reaction product
of a polyether polyol with an acid represented by the formula RCOOH in which R is
a hydrocarbaryl radical having 6 to 27 carbon atoms. The poly(oxyalkylene) ester compounds
of this patent are taught to be useful for inhibiting carbonaceous deposit formation,
motor fuel hazing, and as ORI inhibitors when employed as soluble additives in motor
fuel compositions.
[0008] U.S. Patent No. 5,407,452, issued April 18, 1995 to Cherpeck, discloses fuel compositions
containing a major amount of hydrocarbons boiling in the gasoline or diesel range
and an effective deposit-controlling amount of a poly(oxyalkylene) aromatic ester
having an amino,
N-alkylamino,
N,N-dialkylamino, or nitro substituent on the aromatic moiety are surprisingly useful
for reducing engine deposits, especially intake valve deposits, when employed as fuel
additives in fuel compositions.
[0009] Still further, U.S. Patent No. 5,427,591, issued June 27, 1995 to Cherpeck, discloses
poly(oxyalkylene)hydroxyaromatic esters having a poly(oxyalkylene)

tail

provide excellent control of engine deposits, especially intake valve deposits, when
employed as fuel additives in fuel compositions.
[0010] U.S. Patent No. 5,538,521, issued July 23, 1996 to Cherpeck, discloses certain polyalkyl
and poly(oxyalkylene) aromatic esters which are substituted on the aromatic moiety
with a thoether, a sulfoxide, a sulfone, a sulfonic acid, a sulfonamide, a nitrile,
a carboxylic acid or ester, or a carboximide, are surprisingly useful for reducing
engine deposits, especially intake valve deposits, when employed as fuel additives
in fuel compositions.
[0011] U.S. Patent No. 5,540,743, issued July 30, 1996 to Cherpeck, relates to polyalkyl
and poly(oxyalkylene)benzyl amine esters and to fuel compositions containing the same.
More particularly, this patent discloses that certain polyalkyl and poly(oxyalkylene)benzyl
amine esters are useful in fuel compositions to prevent and control engine deposits,
especially intake valve deposits.
[0012] My commonly assigned copending U.S. Patent application serial number 08/581,658,
filed December 29, 1995, discloses a novel fuel-soluble substituted aromatic polyalkyl
ether fuel additive which is useful for the prevention and control of engine deposits,
particularly intake valve deposits, when employed as fuel additives in fuel compositions.
[0013] It has now been discovered that certain poly(oxyalkylene) esters of substituted polyphenylethers
are surprisingly useful for reducing engine deposits, especially intake valve deposits,
when employed as fuel additives in fuel compositions.
SUMMARY OF THE INVENTION
[0014] The present invention provides novel fuel-soluble poly(oxyalkylene) esters of substituted
polyphenylether fuel additives which are useful for the prevention and control of
engine deposits, particularly intake valve deposits.
[0015] The fuel-soluble poly(oxyalkylene) esters of the substituted polyphenylethers of
the present invention have the formula:

wherein A is amino, aminomethyl, cyano, nitro,
N-alkylamino or
N-alkylaminomethyl wherein the alkyl group contains about 1 to about 6 carbon atoms,
or
N,
N-dialkylamino or
N,N-dialkylaminomethyl wherein each alkyl group independently contains about 1 to about
6 carbon atoms; R
1 and R
2 are independently hydrogen or lower alkyl having about 1 to about 6 carbon atoms
and each R
1 and R
2 is independently selected in each -O-CHR
1-CHR
2- unit; R
3 is hydrogen, alkyl having about 1 to about 100 carbon atoms, phenyl, aralkyl having
about 7 to about 100 carbon atoms, or alkaryl having about 7 to about 100 carbon atoms.
[0016] x is an integer from about 1 to about 10; y is an integer from 0 to about 10; and
z is an integer from about 1 to about 100.
[0017] The present invention further provides a fuel composition comprising a major amount
of hydrocarbons boiling in the gasoline or diesel range and an effective deposit-controlling
amount of a poly(oxyalkylene) ester of a substituted polyphenylether.
[0018] The present invention further provides a fuel concentrate comprising an inert stable
oleophilic organic solvent boiling in the range of from about 150°F (65°C) to about
400°F (205°C) and from about 10 to about 70 weight percent of a poly(oxyalkylene)
ester of a substituted polyphenylether of formula I above.
[0019] The present invention also provides a method for reducing engine deposits in an internal
combustion engine comprising operating the engine with a fuel composition containing
an effective deposit-controlling amount of a poly(oxyalkylene) ester of a substituted
polyphenylether of formula I above.
[0020] Among other factors, the present invention is based on the surprising discovery that
certain substituted poly(oxyalkylene) esters of substituted polyphenylethers provide
excellent control of engine deposits, especially on intake valves, when employed as
fuel additives in fuel compositions.
DETAILED DESCRIPTION OF THE INVENTION
[0021] The fuel-soluble poly(oxyalkylene) esters of the substituted polyphenylethers of
the present invention have the general formula:

wherein A, R
1, R
2, R
3, x, y, and z are as defined above.
[0022] In formula I, A is preferably an amino or aminomethyl group. Most preferably, A is
an amino group.
[0023] Preferably, one of R
1 and R
2 is lower alkyl having about 1 to about 3 carbon atoms and the other is hydrogen.
More preferably, one of R
1 and R
2 is methyl or ethyl and the other is hydrogen. Most preferably, one of R
1 and R
2 is ethyl and the other is hydrogen.
[0024] R
3 is preferably hydrogen, alkyl having about 1 to about 30 carbon atoms, or alkylphenyl
having an alkyl group containing about 1 to about 30 carbon atoms. More preferably,
R
3 is hydrogen, alkyl having about 2 to about 24 carbon atoms, or alkylphenyl having
an alkyl group containing about 2 to about 24 carbon atoms. Still more preferably,
R
3 is hydrogen, alkyl having about 4 to about 12 carbon atoms or alkylphenyl having
an alkyl group containing about 4 to about 12 carbon atoms. Most preferably, R
3 is alkylphenyl having an alkyl group containing about 4 to about 12 carbon atoms.
[0025] Preferably, x is an integer from about 1 to about 10. Most preferably, x is 1. Preferably,
y is an integer from 0 to about 10. Most preferably, y is 0. Preferably, z is an integer
from about 1 to about 50. Most preferably, z is an integer from about 1 to about 30.
[0026] When A is an
N-alkylamino group, the alkyl group of the
N-alkylamino moiety preferably contains about 1 to about 4 carbon atoms. More preferably,
the alkyl group is methyl or ethyl. For example, particularly preferred
N-alkylamino groups are
N-methylamino and
N-ethylamino groups.
[0027] Similarly, when A is an
N,
N-dialkylamino group, each alkyl group of the
N,
N-dialkylamino moiety preferably contains about 1 to about 4 carbon atoms. More preferably,
each alkyl group is either methyl or ethyl. For example, particularly preferred
N,
N-dialkylamino groups are
N,
N-dimethylamino,
N-ethyl-
N-methylamino and
N,
N-diethylamino groups.
[0028] A preferred group of poly(oxyalkylene) esters of the substituted polyphenylethers
for use in this invention are compounds of formula I wherein A is amino or aminomethyl;
one of R
1 and R
2 is hydrogen and the other is methyl or ethyl; R
3 is hydrogen, alkyl having about 1 to about 30 carbon atoms or alkylphenyl having
an alkyl group containing about 1 to about 30 carbon atoms; x is about 1; y is 0;
and z is about 1 to about 50.
[0029] A more preferred group of poly(oxyalkylene) esters of the substituted polyphenylethers
are those of formula I wherein A is amino; one of R
1 and R
2 is hydrogen and the other is methyl or ethyl; R
3 is hydrogen, alkyl having about 2 to about 24 carbon atoms or alkylphenyl having
an alkyl group containing about 2 to about 24 carbon atoms; x is about 1; y is 0,
and z is about 1 to about 50.
[0030] It is especially preferred that the amino, aminomethyl, cyano, nitro,
N-alkylamino or
N-alkylaminomethyl,
N,N-dialkylamino or
N,N-dialkylaminomethyl substituent, present in the aromatic moiety of the poly(oxyalkylene)
esters of the substituted polyphenylethers of this invention be situated in a
meta or
para position relative to the polyphenylether moiety.
[0031] The poly(oxyalkylene) esters of the substituted polyphenylethers employed in the
present invention will generally have a sufficient molecular weight so as to be non-volatile
at normal engine intake valve operating temperatures (about 200°C to about 250°C).
Typically, the molecular weight of the poly(oxyalkylene) esters of the substituted
polyphenylethers will range from about 600 to about 10000, preferably from about 1000
to about 3000.
[0032] Generally, the poly(oxyalkylene) esters of the substituted polyphenylethers in this
invention will contain an average of about 1 to about 100 oxyalkylene units; preferably,
about 1 to about 50 oxyalkylene units; more preferably, about 1 to about 30 oxyalkylene
units.
[0033] Fuel-soluble salts of the poly(oxyalkylene) esters of the substituted polyphenylethers
in the present invention can be readily prepared for those compounds containing an
amino,
N-alkylamino or
N-alkylaminomethyl or
N,N dialkylamino or
N,
N-dialkylaminomethyl group and such salts are contemplated to be useful for preventing
or controlling engine deposits. Suitable salts include, for example, those obtained
by protonating the amino moiety with a strong organic acid, such as an alkyl- or arylsulfonic
acid. Preferred salts are derived from toluenesulfonic acid and methanesulfonic acid.
Definitions
[0034] As used herein, the following terms have the following meanings unless expressly
stated to the contrary.
[0035] The term, "amino" refers to the group: -NH
2.
[0036] The term "aminomethyl" refers to the group: -CH
2NH
2.
[0037] The term "cyano" refers to the group: -CN.
[0038] The term "nitro" refers to the group: -NO
2.
[0039] The term "
N-alkylamino" refers to the group: -NHR
a wherein R
a is an alkyl group. The term "
N,
N-dialkylamino" refers to the group: -NR
bR
c, wherein R
b and R
c are alkyl groups.
[0040] The term "
N-alkylaminomethyl" refers to the group: -CH
2NHR
d wherein R
d is an alkyl group. The term "
N,
N-dialkylaminomethyl" refers to the group: -CH
2NR
eR
f, wherein R
e and R
f are alkyl groups.
[0041] The term "alkyl" refers to both straight- and branched-chain alkyl groups.
[0042] The term "lower alkyl" refers to alkyl groups having about 1 to about 6 carbon atoms
and includes primary, secondary, and tertiary alkyl groups. Typical lower alkyl groups
include, for example, methyl, ethyl, n-propyl, isopropyl, n-butyl, sec-butyl, t-butyl,
n-pentyl, n-hexyl, and the like.
[0043] The term "lower alkoxy" refers to the group -OR
g wherein R
g is lower alkyl. Typical lower alkoxy groups include methoxy, ethoxy, and the like.
[0044] The term "alkaryl" refers to the group:

wherein R
h and R
i are each independently hydrogen or an alkyl group, with the proviso that both R
h and R
i are not hydrogen. Typical alkaryl groups include, for example, tolyl, xylyl, cumenyl,
ethylphenyl, butylphenyl, dibutylphenyl, hexylphenyl, octylphenyl, dioctylphenyl,
nonylphenyl, decylphenyl, didecylphenyl, dodecylphenyl, hexadecylphenyl, octadecylphenyl,
icosylphenyl, tricontylphenyl, and the like. The term "alkylphenyl" refers to an alkaryl
group of the above formula in which R
h is alkyl and R
i is hydrogen.
[0045] The term "aralkyl" refers to the group:

wherein R
j and R
k are each independently hydrogen or an alkyl group; and R
l is an alkylene group. Typical alkaryl groups include, for example, benzyl, methylbenzyl,
dimethylbenzyl, phenethyl, and the like.
[0046] The term "oxyalkylene unit" refers to an ether moiety having the general formula:

wherein R
m and R
n are each independently hydrogen or lower alkyl groups.
[0047] The term "poly(oxyalkylene)" refers to a polymer or oligomer having the general formula:

wherein R
m and R
n are as defined above, and z is an integer from about 1 to about 100. When referring
herein to the number of poly(oxyalkylene) units in a particular poly(oxyalkylene)
compound, it is to be understood that this number refers to the average number of
poly(oxyalkylene) units in such compounds unless expressly stated to the contrary.
It is also to be understood that the term

poly(oxyalkylene)

includes compounds containing one oxyalkylene unit.
General Synthetic Procedures
[0048] The poly(oxyalkylene) esters of the substituted polyphenylethers in this invention
can be prepared by the following general methods and procedures. Those skilled in
the art will recognize that where typical or preferred process conditions (e.g., reaction
temperatures, times, mole ratios of reactants, solvents, pressures, etc.) are given,
other process conditions may also be used unless otherwise stated. Optimum reaction
conditions may vary with the particular reactants or solvents used, but one skilled
in the art will be able to determine such conditions by routine optimization procedures.
[0049] Moreover, those skilled in the art will recognize that it may be necessary to block
or protect certain functional groups while conducting the following synthetic procedures.
In such cases, the protecting group will serve to protect the functional group from
undesired reactions or to block its undesired reaction with other functional groups
or with the reagents used to carry out the desired chemical transformations. The proper
choice of a protecting group for a particular functional group will be readily apparent
to one skilled in the art. Various protecting groups and their introduction and removal
are described, for example, in T.W. Greene and P.G.M. Wuts,
Protective Groups in Organic Synthesis, Second Edition, Wiley, New York, 1991, and references cited therein.
[0050] In the present synthetic procedures, a hydroxyl group will preferably be protected,
when necessary, as the benzyl or
tert-butyldimethylsilyl ether. Introduction and removal of these protecting groups is
well described in the art. Amino groups may also require protection and this may be
accomplished by employing a standard amino protecting group, such as a benzyloxycarbonyl
or a trifluoroacetyl group. Additionally, as will be discussed in further detail hereinbelow,
the poly(oxyalkylene) esters of the substituted polyphenylethers of this invention
having an amino group on the aromatic moiety will generally be prepared from the corresponding
nitro derivative. Accordingly, in many of the following procedures, a nitro group
will serve as a protecting group for the amino moiety. Moreover, the compounds of
this invention having a -CH
2NH
2 group on the aromatic moiety will generally be prepared from the corresponding cyano
derivative, -CN. Thus, in many of the following procedures, a cyano group will serve
as a protecting group for the -CH
2NH
2 moiety.
[0051] The poly(oxyalkylene) esters of the substituted polyphenylethers of the present invention
wherein x is about 1 may be prepared by first esterifying an aromatic carboxylic acid
having the formula:

with a poly(oxyalkylene) alcohol having the formula:

wherein R
1-R
3, y and z are as defined above, using conventional esterification reaction conditions.
[0052] This reaction is typically conducted by contacting poly(oxyalkylene) alcohol III
with about 0.90 to about 1.5 molar equivalents of aromatic carboxylic acid II in the
presence of an acidic catalyst at a temperature in the range of about 70°C to about
160°C for about 0.5 to about 48 hours. Suitable acid catalysts for this reaction include,
for example, p-toluenesulfonic acid, methanesulfonic acid, sulfuric acid, and the
like. The reaction may be conducted in the presence or absence of an inert solvent,
such as toluene, xylene, and the like. The water generated during this reaction may
be continuously removed by conventional procedures, such as azeotropic distillation
with an inert solvent, such as xylene.
[0053] Alternatively, the poly(oxyalkylene) esters of the substituted polyphenylethers of
formula I may be prepared by reacting poly(oxyalkylene) alcohol III with an acid halide
derived from aromatic carboxylic acid II, such as an acid bromide or acid chloride.
[0054] Generally, the carboxylic acid moiety of formula II may be converted into an acyl
halide moiety by contacting II with an inorganic acid halide, such as thionyl chloride,
phosphorous trichloride, phosphorous tribromide, or phosphorous pentachloride; or
with oxalyl chloride. Typically, this reaction will be conducted using about 1 to
about 5 molar equivalents of the inorganic acid halide or oxalyl chloride, either
neat or in an inert solvent, such as diethyl ether, at a temperature in the range
of about 20°C to about 80°C for about 1 to about 48 hours. A catalyst, such as
N,N-dimethylformamide, may also be used in this reaction.
[0055] Reaction of the acid halide derived from formula II with poly(oxyalkylene) alcohol
III and subsequent removal of the benzyl ether moiety provides a poly(oxyalkylene)
aromatic ester having the formula IV shown below.

wherein R
1-R
3, y and z are as defined above.
[0056] Typically, this reaction is conducted by contacting III with about 0.9 to about 1.5
molar equivalents of the acid halide in an inert solvent, such as toluene, dichloromethane,
diethyl ether, and the like, at a temperature in the range of about 25°C to about
150°C. The reaction is generally complete in about 0.5 to about 48 hours. Preferably,
the reaction is conducted in the presence of a sufficient amount of an amine capable
of neutralizing the acid generated during the reaction, such as triethylamine, di(isopropyl)ethylamine,
pyridine, or 4-dimethylaminopyridine. Catalyst such as scandium trifluoromethane sulfonate
or tributylphosphine also be used to facilitate the esterification reaction. Cleavage
of the benzyl ether using conventional hydrogenolysis procedures then provides the
above formula IV.
[0057] Where x is about 2 to about 10, the structure of formula IV may be further reacted
with a suitable amount of a protected hydroxyaromatic halide having the formula:

wherein B is a halide, such as chloride or bromide, and R
4 is a suitable hydroxy protecting group, such as benzyl, utilizing the Ullmann ether
condensation, to give an aromatic ether having the formula:

wherein R
1-R
4, x, y and z are defined as above.
[0058] The aromatic carboxylic acids of formula II employed in the above-described procedures
are either known compounds or can be prepared from known compounds by conventional
procedures. Representative aromatic carboxylic acids suitable for use in these reactions
include, for example, 3-benzyloxybenzoic acid and 4-benzyloxybenzoic acid. 4-Benzyloxybenzoic
acid is preferred.
[0059] The poly(oxyalkylene) alcohols of formula III are also known compounds that can be
prepared using conventional procedures. For example, suitable procedures for preparing
such compounds are taught in U.S. Patent Nos. 2,782,240 and 2,841,479, the disclosures
of which are incorporated herein by reference.
[0060] Preferably, the poly(oxyalkylene) alcohols of formula III are prepared by contacting
an alkoxide or phenoxide metal salt having the formula:
R
3-O-M Formula VII
wherein R
3 is as defined above and M is a metal cation, such as lithium, sodium, potassium,
and the like, with about 1 to about 100 molar equivalents of an alkylene oxide (an
epoxide) having the formula:

wherein R
1 and R
2 are as defined above.
[0061] Typically, metal salt VII is prepared by contacting the corresponding hydroxy compound
R
3OH with a strong base, such as sodium hydride, potassium hydride, sodium amide, and
the like, in an inert solvent, such as toluene, xylene, and the like, under substantially
anhydrous conditions at a temperature in the range from about -10°C to about 120°C
for about 0.25 to about 3 hours.
[0062] Metal salt VII is generally not isolated, but is reacted
in situ with alkylene oxide VIII to provide, after neutralization, the poly(oxyalkylene)
alcohol III. This polymerization reaction is typically conducted in a substantially
anhydrous inert solvent at a temperature of about 30°C to about 150°C for about 2
to about 120 hours. Suitable solvents for this reaction include toluene, xylene, and
the like. Typically, the reaction is conducted at a pressure sufficient to contain
the reactants and the solvent, preferably at atmospheric or ambient pressure.
[0063] The amount of alkylene oxide employed in this reaction will generally depend on the
number of oxyalkylene units desired in the product. Typically, the molar ratio of
alkylene oxide VIII to metal salt VII will range from about 1:1 to about 100:1; preferably,
from 1:1 to 50:1, more preferably from 1:1 to 30:1.
[0064] Alkylene oxides suitable for use in this polymerization reaction include, for example,
ethylene oxide; propylene oxide; butylene oxides, such as 1,2-butylene oxide (1,2-epoxybutane)
and 2,3-butylene oxide (2,3-epoxybutane); pentylene oxides; hexylene oxides; octylene
oxides; and the like. Preferred alkylene oxides are propylene oxide and 1,2-butylene
oxide.
[0065] In the polymerization reaction, a single type of alkylene oxide may be employed,
e.g., propylene oxide, in which case the product is a homopolymer, e.g., a poly(oxypropylene)
polymer. Copolymers are equally satisfactory and random copolymers can be prepared
by contacting metal salt VII with a mixture of alkylene oxides, such as a mixture
of propylene oxide and 1,2-butylene oxide, under polymerization conditions. Copolymers
containing blocks of oxyalkylene units are also suitable for use in this invention.
Block copolymers can be prepared by contacting metal salt VII with first one alkylene
oxide, then others in any order, or repetitively, under polymerization conditions.
[0066] Poly(oxyalkylene) copolymers prepared by terminating or capping the poly(oxyalkylene)
moiety with about 1 to about 10 oxyethylene units, preferably about 2 to about 5 oxyethylene
units, are particularly useful in the present invention, since these copolymers have
been found to be more readily esterified than those having an alkyl branch in the
terminal oxyalkylene unit. These copolymers may be prepared by contacting metal salt
VII with an alkylene oxide of formula VIII, such as 1,2-butylene oxide or propylene
oxide, under polymerization conditions and then capping or terminating the resulting
block of oxyalkylene units with oxyethylene units by adding ethylene oxide.
[0067] The poly(oxyalkylene) alcohol III may also be prepared by living or immortal polymerization
as described by S. Inoue and T. Aida in
Encyclopedia of Polymer Science and Engineering, Second Edition, Supplemental Volume, J. Wiley and Sons, New York, pages 412-420
(1989). These procedures are especially useful for preparing poly(oxyalkylene) alcohols
of formula III in which R
1 and R
2 are both alkyl groups.
[0068] As noted above, the alkoxide or phenoxide metal salt VII used in the above procedures
is generally derived from the corresponding hydroxy compound, R
3OH. Suitable hydroxy compounds include straight- or branched-chain aliphatic alcohols
having about 1 to about 100 carbon atoms and phenols having the formula:

wherein R
5 is an alkyl group having about 1 to about 100 carbon atoms and R
6 is hydrogen; or R
5 and R
6 are both alkyl groups, each independently containing about 1 to about 50 carbon atoms.
[0069] Representative examples of straight- or branched-chain aliphatic alcohols suitable
for use in this invention include, but are not limited to, n-butanol; isobutanol;
sec-butanol; t-butanol; n-pentanol; n-hexanol; n-heptanol; n-octanol; isooctanol;
n-nonanol; n-decanol; n-dodecanol; n-hexadecanol (cetyl alcohol); n-octadecanol (stearyl
alcohol); alcohols derived from linear C
10 to C
30 alpha olefins and mixtures thereof; and alcohols derived from polymers of C
2 to C
6 olefins, such as alcohols derived from polypropylene and polybutene, including polypropylene
alcohols having about 9 to about 100 carbon atoms, and polybutylene alcohols having
about 12 to about 100 carbon atoms. Preferred straight- or branched-chain aliphatic
alcohols will contain about 1 to about 30 carbon atoms, more preferably about 2 to
about 24 carbon atoms, and most preferably about 4 to about 12 carbon atoms. Particularly
preferred aliphatic alcohols are butanols.
[0070] The phenols of formula IX may be monoalkyl-substituted phenols or dialkyl-substituted
phenols. Monoalkyl-substituted phenols are preferred, especially monoalkylphenols
having an alkyl substituent in the
para position.
[0071] Preferably, the alkyl group of the alkylphenol will contain about 1 to about 30 carbon
atoms, more preferably about 2 to about 24 carbon atoms, and most preferably about
4 to about 12 carbon atoms. Representative examples of phenols suitable for use in
this invention include, but are not limited to, phenol, methylphenol, dimethylphenol,
ethylphenol, butylphenol, octylphenol, decylphenol, dodecylphenol, tetradecylphenol,
hexadecylphenol, octadecylphenol, eicosylphenol, tetracosylphenol, hexacosylphenol,
triacontylphenol, and the like. Also, mixtures of alkylphenols may be employed, such
as a mixture of C
14-C
18 alkylphenols, a mixture of C
18-C
24 alkylphenols, a mixture of C
20-C
24 alkylphenols, or a mixture of C
16-C
26 alkylphenols.
[0072] Particularly preferred alkylphenols are prepared by alkylating phenol with polymers
or oligomers of C
3 to C
6 olefins, such as polypropylene or polybutene. These polymers typically contain about
8 to about 100 carbon atoms, preferably about 10 to about 30 carbon atoms. An especially
preferred alkylphenol is prepared by alkylating phenol with a propylene polymer having
an average of about 4 units. This polymer has the common name of propylene tetramer
and is commercially available.
[0073] Finally, the poly(oxyalkylene) esters of the substituted polyphenylethers of the
present invention may be prepared by reacting a compound of formula VI above, after
deprotecting the hydroxy group, with an aromatic compound having the formula:

wherein C is a halide, preferably a chloride or fluoride, and more preferably fluoride,
and D is cyano or nitro. Such aromatic compounds of formula X are well known to one
skilled in the art to be readily available commercially. For example, these compounds
can be purchased from Aldrich Chemical Company, Inc. The reaction of the hydroxy compound
of formula VI with the cyano or nitro aromatic halide of formula X provides the poly(oxyalkylene)
esters of the substituted polyphenylethers of formula XI.

wherein D, R
1, R
2, R
3, x, y and z are as defined above.
[0074] Alternatively, compounds of the present invention can be prepared by esterifying
a compound of formula XII below:

wherein D, x and y are as defined above and W is hydroxy or halogen, with a poly(oxyalkylene)
mono-ol of formula III, above, under the esterification conditions described above.
Compounds of formula XII wherein W is hydroxy are described, for example, in U.S.
Patent Nos. 3,642,882; 4,946,926 and 3,763,210.
[0075] The resulting cyano or nitro aromatic ethers may then be reduced to the corresponding
amino or aminomethyl compound using conventional hydrogenation conditions well known
in the art to yield the poly(oxyalkylene) esters of the substituted polyphenylethers
of formula I. Hydrogenation of aromatic cyano and nitro groups are discussed in further
detail in P.N. Rylander,
Catalytic Hydrogenation in Organic Synthesis, Academic Press (1979).
[0076] Reductions can also be accomplished through the use of reducing metals in the presence
of acids, such as hydrochloric acid. Typical reducing metals are zinc, iron, and tin;
salts of these metals can also be used.
[0077] Typically, the amino or aminomethyl substituted polyphenylethers of the present invention
are obtained by reduction of the corresponding cyano or nitro compound with hydrogen
in the presence of a metallic catalyst such as palladium. This reduction is generally
carried out at temperatures of about 20°C to about 100°C, typically, about 20°C to
about 40°C, and hydrogen pressures of about atmospheric to about 200 psig, typically,
about 20 to about 80 psig. The reaction time for reduction usually varies between
about 5 minutes to about 24 hours. Substantially, inert liquid diluents and solvents,
such as ethanol, cyclohexane, ethyl acetate, toluene, etc., can be used to facilitate
the reaction. The substituted polyphenylether can then be obtained by well-known techniques
such as distillation, filtration, extraction, and so forth.
[0078] The poly(oxyalkylene) esters of the substituted polyphenylethers of formula I wherein
R
3 is hydrogen, i.e., compounds having the formula:

wherein A, R
1, R
2, x, y and z are as defined above, may be prepared from compounds of formula XI wherein
R
3 is a labile hydrocarbyl group, such as a benzyl or t-butyl group, by removing the
hydrocarbyl group under appropriate conditions to provide a hydroxyl group. For example,
compounds of formula XI where R
3 represents a benzyl group may be prepared by employing a metal salt VII derived from
benzyl alcohol in the above-described synthetic procedures. Cleavage of the benzyl
ether using conventional hydrogenolysis procedures then provides a compound of formula
XIII. Other labile hydrocarbyl groups, such as a t-butyl group, may be similarly employed
for those compounds having functional groups that are not compatible with hydrogenolysis
conditions, such as nitro groups. T-Butyl ethers may be cleaved under acidic conditions
using, for example, trifluoroacetic acid.
[0079] When synthesizing the poly(oxyalkylene) esters of the substituted polyphenylethers
of formula I having an amino group on the aromatic moiety (i.e., where A is an amino
group), it is generally desirable to first prepare the corresponding nitro compound
(i.e., where A is a nitro group) using the above-described synthetic procedures, and
then to reduce the nitro group to an amino group using conventional procedures. Aromatic
nitro groups may be reduced to amino groups using a number of procedures that are
well known in the art. For example, aromatic nitro groups may be reduced under catalytic
hydrogenation conditions; or by using a reducing metal, such as zinc, tin, iron, and
the like, in the presence of an acid, such as dilute hydrochloric acid.
[0080] Generally, reduction of the nitro group by catalytic hydrogenation is preferred.
Typically, this reaction is conducted using about 1 to about 4 atmospheres of hydrogen
and a platinum or palladium catalyst, such as palladium on carbon. The reaction is
typically carried out at a temperature of 0°C to about 100°C for about 1 to about
24 hours in an inert solvent, such as ethanol, ethyl acetate, and the like. Hydrogenation
of aromatic nitro groups is discussed in further detail in, for example, P.N. Rylander,
Catalytic Hydrogenation in Organic Synthesis, pp. 113-137, Academic Press (1979); and
Organic Synthesis, Collective Vol. I, Second Edition, pp. 240-241, John Wiley & Sons, Inc. (1941); and references cited
therein.
Fuel Compositions
[0081] The poly(oxyalkylene) esters of the substituted polyphenylethers of the present invention
are useful as additives in hydrocarbon fuels to prevent and control engine deposits,
particularly intake valve deposits. Typically, the desired deposit control is achieved
by operating an internal combustion engine with a fuel composition containing a poly(oxyalkylene)
ester of a substituted polyphenylether of the present invention. The proper concentration
of additive necessary to achieve the desired level of deposit control varies depending
upon the type of fuel employed, the type of engine, and the presence of other fuel
additives.
[0082] In general, the concentration of the poly(oxyalkylene) esters of the substituted
polyphenylethers of this invention in hydrocarbon fuel will range from about 50 to
about 2500 parts per million (ppm) by weight, preferably from about 75 to about 1000
ppm. When other deposit control additives are present, a lesser amount of the present
additive may be used.
[0083] The poly(oxyalkylene) esters of the substituted polyphenylethers of the present invention
may also be formulated as a concentrate using an inert stable oleophilic (i.e., dissolves
in gasoline) organic solvent boiling in the range of about 150°F to about 400°F (about
65°C to about 205°C). Preferably, an aliphatic or an aromatic hydrocarbon solvent
is used, such as benzene, toluene, xylene, or higher-boiling aromatics or aromatic
thinners. Aliphatic alcohols containing about 3 to about 8 carbon atoms, such as isopropanol,
isobutylcarbinol, n-butanol, and the like, in combination with hydrocarbon solvents
are also suitable for use with the present additives. In the concentrate, the amount
of the additive will generally range from about 10 to about 70 weight percent, preferably
about 10 to about 50 weight percent, more preferably from about 20 to about 40 weight
percent.
[0084] In gasoline fuels, other fuel additives may be employed with the additives of the
present invention, including, for example, oxygenates, such as t-butyl methyl ether,
antiknock agents, such as methylcyclopentadienyl manganese tricarbonyl, and other
dispersants/detergents, such as hydrocarbyl amines, hydrocarbyl poly(oxyalkylene)
amines, or succinimides. Additionally, antioxidants, metal deactivators, and demulsifiers
may be present.
[0085] In diesel fuels, other well-known additives can be employed, such as pour point depressants,
flow improvers, cetane improvers, and the like.
[0086] A fuel-soluble, nonvolatile carrier fluid or oil may also be used with the poly(oxyalkylene)
esters of the substituted polyphenylethers of this invention. The carrier fluid is
a chemically inert hydrocarbon-soluble liquid vehicle which substantially increases
the nonvolatile residue (NVR), or solvent-free liquid fraction of the fuel additive
composition while not overwhelmingly contributing to octane requirement increase.
The carrier fluid may be a natural or synthetic oil, such as mineral oil, refined
petroleum oils, synthetic polyalkanes and alkenes, including hydrogenated and unhydrogenated
polyalphaolefins, synthetic polyoxyalkylene-derived oils, such as those described,
for example, in U.S. Patent No. 4,191,537 to Lewis, and polyesters, such as those
described, for example, in U.S. Patent Nos. 3,756,793 and 5,004,478 to Robinson and
Vogel et al., respectively, and in European Patent Application Nos. 356,726 and 382,159,
published March 7, 1990 and August 16, 1990, respectively.
[0087] These carrier fluids are believed to act as a carrier for the fuel additives of the
present invention and to assist in removing and retarding deposits. The carrier fluid
may also exhibit synergistic deposit control properties when used in combination with
a poly(oxyalkylene) ester of a substituted polyphenylether of this invention.
[0088] The carrier fluids are typically employed in amounts ranging from about 100 to about
5000 ppm by weight of the hydrocarbon fuel, preferably from about 400 to about 3000
ppm of the fuel. Preferably, the ratio of carrier fluid to deposit control additive
will range from about 0.5:1 to about 10:1, more preferably from about 1:1 to about
4:1, most preferably about 2:1.
[0089] When employed in a fuel concentrate, carrier fluids will generally be present in
amounts ranging from about 20 to about 60 weight percent, preferably from about 30
to about 50 weight percent.
EXAMPLES
[0090] The following examples are presented to illustrate specific embodiments of the present
invention and synthetic preparations thereof; and therefore these examples should
not be interpreted as limitations upon the scope of this invention.
Example 1
[0091]

[0092] To a flask equipped with a magnetic stirrer and drying tube was added 4-(4

-nitrophenoxy)benzoic acid (10.0 grams, prepared essentially as described in Example
3 of U. S. Pat. No. 3,642,882), anhydrous dichloromethane (100 mL), and oxalyl chloride
(8.4 mL). N,N-Dimethylformamide (one drop) was then added. The resulting mixture was
stirred at room temperature for 16 hours and the solvent removed
in vacuo to yield 10.7 grams of the desired acid chloride as a yellow solid.
Example 2
[0093]

[0094] 4-(4

-nitrophenoxy)benzoyl chloride (10.7 grams, from Example 1), α-hydroxy-ω-4-dodecylphenoxypoly(oxybutylene)
having an average of 18 oxybutylene units (57.2 grams, prepared essentially as described
in Example 6 of U. S. Pat. No. 4,160,648), 4-dimethylaminopyridine (4.9 grams) and
anhydrous chloroform (200 mL) were combined. The resulting mixture was refluxed under
nitrogen for 16 hours. The reaction was diluted with 600 mL of dichloromethane and
was washed twice with one percent aqueous hydrochloric acid, twice with saturated
aqueous sodium bicarbonate solution and once with brine. The organic layer was dried
over anhydrous magnesium sulfate, filtered and the solvents removed
in vacuo to yield 62.7 grams of the desired product as a light yellow oil.
1H NMR (CDCl
3) d 8.25 (AB quartet, 2H), 8.1 (AB quartet, 2H), 7.0-7.25 (m, 6H), 6.75-6.9 (m, 2H),
5.1-5.25 (m, 1H), 3.05-4 (m, 53H), 0.6-1.8 (m, 115H).
Example 3
[0095]

[0096] A solution of 58.1 grams of the product from Example 2 in 600 mL of ethyl acetate
containing 3.0 grams of 10% palladium on charcoal was hydrogenolyzed at 35-40 psi
for 16 hours on a Parr low-pressure hydrogenator. Catalyst filtration and removal
of the solvent
in vacuo yield 52.8 grams as a yellow oil.
1H NMR (CDCl
3, D
2O) d 7.95 (d, 2H), 6.75-7.25 (m, 8H), 6.7 (d, 2H), 5.05-5.2 (m, 1H), 3.05-4 (m, 53H),
0.6-1.8 (m, 115H).
Example 4
Single-Cylinder Engine Test
[0097] The test compounds were blended in gasoline and their deposit reducing capacity determined
in an ASTM/CFR single-cylinder engine test.
[0098] A Waukesha CFR single-cylinder engine was used. Each run was carried out for 15 hours,
at the end of which time the intake valve was removed, washed with hexane and weighed.
The previously determined weight of the clean valve was subtracted from the weight
of the value at the end of the run. The differences between the two weights is the
weight of the deposit. A lesser amount of deposit indicates a superior additive. The
operating conditions of the test were as follows: water jacket temperature 200°F;
vacuum of 12 in Hg, air-fuel ratio of 12, ignition spark timing of 400 BTC; engine
speed is 1800 rpm; the crankcase oil is a commercial 30W oil.
[0099] The amount of carbonaceous deposit in milligrams on the intake valves is reported
for each of the test compounds in Table I.
TABLE I
| Sample1 |
Intake Valve Deposit Weight (in milligrams) |
| |
Run 1 |
Run 2 |
Average |
| Base Fuel |
337.7 |
351 |
344.4 |
| Example 2 |
228.4 |
222.4 |
225.4 |
| Example 3 |
34.9 |
24.9 |
29.9 |
| 1At 150 parts per million actives (ppma). |
[0100] The base fuel employed in the above single-cylinder engine tests was a regular octane
unleaded gasoline containing no fuel detergent. The test compounds were admixed with
the base fuel to give the concentrations indicated in the table.
[0101] The data in Table I illustrates the significant reduction in intake valve deposits
provided by the poly(oxyalkylene) esters of the substituted polyphenylethers of the
present invention (Examples 2 and 3) compared to the base fuel.